👤 Raymond J Louie

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3
Articles
3
Name variants
Also published as: Rikah Louie, S G Louie
articles
Jordy Dekker, Rachel Schot, Kimberly A Aldinger +87 more · 2025 · American journal of human genetics · Elsevier · added 2026-04-24
Jordy Dekker, Rachel Schot, Kimberly A Aldinger, David B Everman, Camerun Washington, Julie R Jones, Jennifer A Sullivan, Rebecca C Spillmann, Vandana Shashi, Antonio Vitobello, Anne-Sophie Denommé-Pichon, Anne-Laure Mosca-Boidron, Laurence Perrin, Stéphane Auvin, Maha S Zaki, Joseph G Gleeson, Naomi Meave, Cassidy Wallace, Sophie Nambot, Julian Delanne, Sarah M Ruggiero, Ingo Helbig, Mark P Fitzgerald, Richard J Leventer, Dorothy K Grange, Emanuela Argilli, Elliott H Sherr, Supraja Prakash, Derek E Neilson, Francesco Nicita, Antonella Sferra, Enrico S Bertini, Chiara Aiello, Knut Brockmann, Alexander B Kuranov, Silke Kaulfuss, Sulman Basit, Majed Alluqmani, Ahmad Almatrafi, Jan M Friedman, Colleen Guimond, Faruq Mohammed, Pooja Sharma, Divya Goel, Thomas Wirth, Mathieu Anheim, Paulina Bahena, Asuman Koparir, Konstantinos Kolokotronis, Barbara Vona, Thomas Haaf, Erdmute Kunstmann, Reza Maroofian, Henrike L Sczakiel, Felix Boschann, Mala Misra-Isrie, Raymond J Louie, Elliot S Stolerman, Pedro A Sanchez-Lara, Sandra Mergler, Renske Oegema, Yuri A Zarate, Ariana Kariminejad, Homa Tajsharghi, Shimriet Zeidler, Anneke J A Kievit, Arjan Bouman, Gerarda Cappuccio, Nicola Brunetti-Pierri, Kyra E Stuurman, Dayna Morel Swols, Mustafa Tekin, Jariya Upadia, Donna M Martin, Daniel Craven, Susan M Hiatt, Laura A van de Pol, Felice D'Arco, Henri Margot, Martina Wilke, Soheil Yousefi, Tahsin Stefan Barakat, Monique M van Veghel-Plandsoen, Eleonora Aronica, Jasper Anink, Stephen L Rogers, Kevin C Slep, Dan Doherty, William B Dobyns, Grazia M S Mancini Show less
Microtubule-actin cross-linking factor 1 (MACF1) is a large protein of the spectraplakin family, which is essential for brain development. MACF1 interacts with microtubules through the growth arrest-s Show more
Microtubule-actin cross-linking factor 1 (MACF1) is a large protein of the spectraplakin family, which is essential for brain development. MACF1 interacts with microtubules through the growth arrest-specific 2 (Gas2)-related (GAR) domain. Heterozygous MACF1 missense variants affecting the zinc-binding residues in this domain result in a distinctive cortical and brain stem malformation. Evidence for other MACF1-associated disorders is still limited. Here, we present a cohort of 45 individuals with heterozygous or bi-allelic MACF1 variants to explore the phenotypic spectrum and assess possible pathogenic relevance. We observe that de novo heterozygous missense variants in the EF-hand domains also result in distinctive brain malformation and provide experimental evidence that variants in the EF-hand/GAR module increase microtubule binding, suggestive of a toxic gain of function. Notably, no phenotype-genotype correlation was possible for the remaining heterozygous variants in other domains. A clinical review of eight families with bi-allelic variants reveals a possible complex neurodevelopmental syndrome of the central and peripheral nervous systems. In these individuals, bi-allelic variants mostly affect the Plakin domain. Furthermore, RNA sequencing and chromatin immunoprecipitation (ChIP) analyses of human fetal brain tissue reveal five MACF1 isoforms with region-specific expression, differing in their exon 1 transcription start sites but splicing to a common exon 2. This differential expression explains the frontal-predominant lissencephaly in an individual with a homozygous stop-gain in exon 1 (MACF1-204: c.70C>T [p.Arg24∗]), as this isoform is preferentially expressed in the frontal cortex. We conclude that MACF1-related disorders are strictly linked to domain function and the level of transcript expression, explaining the observed wide clinical heterogeneity. Show less
no PDF DOI: 10.1016/j.ajhg.2025.08.010
MACF1
Natalia Becares, Matthew C Gage, Maud Voisin +17 more · 2019 · Cell reports · Elsevier · added 2026-04-24
Non-alcoholic fatty liver disease (NAFLD) is a very common indication for liver transplantation. How fat-rich diets promote progression from fatty liver to more damaging inflammatory and fibrotic stag Show more
Non-alcoholic fatty liver disease (NAFLD) is a very common indication for liver transplantation. How fat-rich diets promote progression from fatty liver to more damaging inflammatory and fibrotic stages is poorly understood. Here, we show that disrupting phosphorylation at Ser196 (S196A) in the liver X receptor alpha (LXRα, NR1H3) retards NAFLD progression in mice on a high-fat-high-cholesterol diet. Mechanistically, this is explained by key histone acetylation (H3K27) and transcriptional changes in pro-fibrotic and pro-inflammatory genes. Furthermore, S196A-LXRα expression reveals the regulation of novel diet-specific LXRα-responsive genes, including the induction of Ces1f, implicated in the breakdown of hepatic lipids. This involves induced H3K27 acetylation and altered LXR and TBLR1 cofactor occupancy at the Ces1f gene in S196A fatty livers. Overall, impaired Ser196-LXRα phosphorylation acts as a novel nutritional molecular sensor that profoundly alters the hepatic H3K27 acetylome and transcriptome during NAFLD progression placing LXRα phosphorylation as an alternative anti-inflammatory or anti-fibrotic therapeutic target. Show less
no PDF DOI: 10.1016/j.celrep.2018.12.094
NR1H3
N M Mordwinkin, C J Meeks, S S Jadhav +5 more · 2012 · Endocrinology · added 2026-04-24
Diabetics have an increased risk of developing cardiovascular disease, in part due to oxidative stress, resulting in endothelial nitric oxide synthase (eNOS) dysfunction. Studies have demonstrated tha Show more
Diabetics have an increased risk of developing cardiovascular disease, in part due to oxidative stress, resulting in endothelial nitric oxide synthase (eNOS) dysfunction. Studies have demonstrated that angiotensin-(1-7) [Ang-(1-7)] can activate eNOS activity. Because the bone marrow is a primary source of a number of progenitors important in physiological homeostasis and healing, the goal of this study was to evaluate the in vivo effects of Ang-(1-7) treatment on oxidative stress and the ensuing nitrative stress in diabetic bone marrow and its potential pathways. BKS.Cg-Dock7(m) +/+ Lepr(db)/J mice and their heterozygous controls were administered Ang-(1-7) alone or combined with A-779, losartan, PD123,319, nitro-l-arginine methyl ester, or icatibant sc for 14 d. The bone marrow was then collected to measure nitric oxide levels, eNOS phosphorylation, and expression of nitric oxide synthase, superoxide dismutase, and p22-phox. Nitric oxide levels in the bone marrow were significantly decreased in diabetic mice, and Ang-(1-7) treatment was able to significantly increase these measures (P < 0.01). This effect was blocked by the coadministration of PD123,319, A-779, nitro-l-arginine methyl ester, and icatibant. In addition, Ang-(1-7) treatment reversed the paradoxical increase in eNOS and neuronal nitric oxide synthase expression and decreased the phosphorylation of eNOS at Thr495 seen in diabetic mice. Ang-(1-7) also reversed diabetes-induced production of reactive oxygen species by decreasing p22-phox expression and increasing superoxide dismutase 3 expression, leading to a significant reduction in 3-nitrotyrosine formation in diabetic bone marrow (P < 0.05). Our findings demonstrate that Ang-(1-7) administration decreases diabetes-induced oxidative stress in the bone marrow and modifies pathways involved in eNOS dysfunction. Show less
no PDF DOI: 10.1210/en.2011-2031
DOCK7